参数资料
型号: MAX11619EEE+
厂商: Maxim Integrated Products
文件页数: 11/21页
文件大小: 0K
描述: IC ADC 10BIT SRL 300KSPS 16QSOP
产品培训模块: Lead (SnPb) Finish for COTS
Obsolescence Mitigation Program
标准包装: 1
位数: 10
采样率(每秒): 300k
数据接口: MICROWIRE?,QSPI?,串行,SPI?
转换器数目: 1
功率耗散(最大): 667mW
电压电源: 单电源
工作温度: -40°C ~ 85°C
安装类型: 表面贴装
封装/外壳: 16-SSOP(0.154",3.90mm 宽)
供应商设备封装: 16-QSOP
包装: 管件
输入数目和类型: 4 个单端,单极
MAX11618–MAX11621/MAX11624/MAX11625
10-Bit, 300ksps ADCs
with FIFO and Internal Reference
______________________________________________________________________________________
19
Initiate a conversion by writing a byte to the conversion
register followed by 16 SCLK cycles. If CS is pulsed
high between the eight and ninth cycles, the pulse
width must be less than 100s. To continuously convert
at 16 cycles per conversion, alternate 1 byte of zeros
between each conversion byte.
If reference mode 00 is requested, wait 65s with CS
high after writing the conversion byte to extend the
acquisition and allow the internal reference to power up.
Partial Reads and Partial Writes
If the first byte of an entry in the FIFO is partially read
(CS is pulled high after fewer than eight SCLK cycles),
the second byte of data that is read out contains the
next 8 bits (not b7–b0). The remaining bits are lost for
that entry. If the first byte of an entry in the FIFO is read
out fully, but the second byte is read out partially, the
rest of the entry is lost. The remaining data in the FIFO
is uncorrupted and can be read out normally after tak-
ing CS low again, as long as the 4 leading bits (normal-
ly zeros) are ignored. Internal registers that are written
partially through the SPI contain new values, starting at
the MSB up to the point that the partial write is stopped.
The part of the register that is not written contains previ-
ously written values. If CS is pulled low before EOC
goes low, a conversion cannot be completed and the
FIFO is corrupted.
Transfer Function
Figure 8 shows the unipolar transfer function for single-
ended inputs. Code transitions occur halfway between
successive-integer LSB values. Output coding is binary,
with 1 LSB = VREF/1024 for unipolar operation.
Layout, Grounding, and Bypassing
For best performance, use PCBs. Do not use wire wrap
boards. Board layout should ensure that digital and
analog signal lines are separated from each other. Do
not run analog and digital (especially clock) signals
parallel to one another or run digital lines underneath
the package. High-frequency noise in the VDD power
supply can affect performance. Bypass the VDD supply
with a 0.1F capacitor to GND, close to the VDD pin.
Minimize capacitor lead lengths for best supply-noise
rejection. If the power supply is very noisy, connect a
10
resistor in series with the supply to improve power-
supply filtering.
CS
DOUT
SCLK
DIN
EOC
MSB1
LSB1
MSB2
(ACQUISITION1)
(ACQUISITION2)
(CONVERSION1)
(CONVERSION BYTE)
EXTERNALLY TIMED ACQUISITION, SAMPLING AND CONVERSION WITHOUT CNVST.
Figure 7. Clock Mode 11
OUTPUT CODE
FULL-SCALE
TRANSITION
11 . . .
. . . 111
11 . . .
. . . 110
11 . . .
. . . 101
00 . . .
. . . 011
00 . . .
. . . 010
00 . . .
. . . 001
00 . . .
. . . 000
12
3
0
(COM)
FS
FS - 3/2 LSB
FS = VREF + VCOM
ZS = VCOM
INPUT VOLTAGE (LSB)
1 LSB =
VREF
1024
Figure 8. Unipolar Transfer Function, Full Scale (FS) = VREF
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